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具有增强硬度和生物相容性的Ti(1-x)Au(x)薄膜的热激活

Thermal activation of Ti(1-x)Au(x) thin films with enhanced hardness and biocompatibility.

作者信息

Lukose Cecil Cherian, Anestopoulos Ioannis, Mantso Theodora, Bowen Leon, Panayiotidis Mihalis I, Birkett Martin

机构信息

Department of Mechanical and Construction Engineering, Northumbria University, Newcastle Upon Tyne, UK.

Department of Cancer Genetics, Therapeutics & Ultrastructural Pathology, The Cyprus Institute of Neurology and Genetics, Nicosia, Cyprus.

出版信息

Bioact Mater. 2022 Mar 3;15:426-445. doi: 10.1016/j.bioactmat.2022.02.027. eCollection 2022 Sep.

Abstract

The lifetime of orthopaedic implants can be extended by coating the softer TiAlV alloy with harder biocompatible thin films. In this work, thin films of TiAu are grown on TiAlV and glass substrates by magnetron sputtering in the entire x = 0-1 range, before their key biomechanical properties are performance tuned by thermal activation. For the first time, we explore the effect of in-situ substrate heating versus ex-situ post-deposition heat-treatment, on development of mechanical and biocompatibility performance in Ti-Au films. A ∼250% increase in hardness is achieved for Ti-Au films compared to bulk TiAlV and a ∼40% improvement from 8.8 GPa as-grown to 11.9 and 12.3 GPa with in-situ and ex-situ heat-treatment respectively, is corelated to changes in structural, morphological and chemical properties, providing insights into the origins of super-hardness in the Ti rich regions of these materials. X-ray diffraction reveals that as-grown films are in nanocrystalline states of Ti-Au intermetallic phases and thermal activation leads to emergence of mechanically hard Ti-Au intermetallics, with films prepared by in-situ substrate heating having enhanced crystalline quality. Surface morphology images show clear changes in grain size, shape and surface roughness following thermal activation, while elemental analysis reveals that in-situ substrate heating is better for development of oxide free TiAu β-phases. All tested Ti-Au films are non-cytotoxic against L929 mouse fibroblast cells, while extremely low leached ion concentrations confirm their biocompatibility. With peak hardness performance tuned to >12 GPa and excellent biocompatibility, Ti-Au films have potential as a future coating technology for load bearing medical implants.

摘要

通过用更硬的生物相容性薄膜涂覆较软的TiAlV合金,可以延长骨科植入物的使用寿命。在这项工作中,通过磁控溅射在整个x = 0-1范围内在TiAlV和玻璃基板上生长TiAu薄膜,然后通过热激活对其关键的生物力学性能进行性能调整。我们首次探索了原位基板加热与异位沉积后退火处理对Ti-Au薄膜机械性能和生物相容性性能发展的影响。与块状TiAlV相比,Ti-Au薄膜的硬度提高了约250%,并且从生长时的8.8 GPa分别通过原位和异位热处理提高到11.9和12.3 GPa,提高了约40%,这与结构、形态和化学性质的变化相关,为这些材料富钛区域中超硬度的起源提供了见解。X射线衍射表明,生长态薄膜处于Ti-Au金属间相的纳米晶状态,热激活导致机械硬度较高的Ti-Au金属间相出现,通过原位基板加热制备的薄膜具有更高的晶体质量。表面形貌图像显示热激活后晶粒尺寸、形状和表面粗糙度有明显变化,而元素分析表明原位基板加热更有利于无氧化物TiAu β相的形成。所有测试的Ti-Au薄膜对L929小鼠成纤维细胞均无细胞毒性,而极低的浸出离子浓度证实了它们的生物相容性。由于峰值硬度性能调整到>12 GPa且具有优异的生物相容性,Ti-Au薄膜有潜力作为未来承重医疗植入物的涂层技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6264/8958427/dfb30e3876a7/ga1.jpg

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